Nrf2通过调控xCT/GPX4通路减轻急性缺血性卒中所致铁下垂

IF 8 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Free Radical Biology and Medicine Pub Date : 2025-04-01 Epub Date: 2025-02-26 DOI:10.1016/j.freeradbiomed.2025.02.040
Yujun Ye , Xuexin Xie , Yiming Bi , Qing Liu , Lingling Qiu , He Zhao , Chengyin Wang , Weifeng Zhu , Ting Zeng
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引用次数: 0

摘要

铁凋亡是调节细胞死亡的一种形式,急性缺血性卒中(AIS)后脑内铁积累与铁代谢的触发有关。核因子红细胞2相关因子2 (Nuclear factor erythroid 2-related factor 2, Nrf2)是细胞中最重要的抗氧化转录因子之一,与铁凋亡和氧化应激密切相关。在本研究中,我们探索Nrf2对ais诱导的铁下垂发挥神经保护作用的内在机制。在体内实验中,我们通过在野生型(WT)小鼠以及Nrf2 - / -小鼠中腹腔注射铁抑制素-1 (fero -1,一种铁凋亡抑制剂)、Oltipraz(一种Nrf2激动剂)和ML385(一种Nrf2抑制剂),探讨了大脑中动脉闭塞(MCAO)诱导的AIS的保护作用及其机制。在体外实验中,我们通过shRNA过表达或沉默Nrf2在SH-SY5Y细胞中的表达,探讨Nrf2对Erastin诱导的铁凋亡细胞模型的作用机制。铁下垂在AIS中起重要作用,fer1抑制铁积累,减轻AIS引起的神经元损伤。Oltipraz通过增加皮质血流量(CBF)减轻ais诱导的神经元损伤和脑梗死。此外,Oltipraz通过减少氧化应激和铁过载来防止ais诱导的铁下垂。同时,在oltipraz处理的AIS小鼠中,Nrf2、溶质载体家族7成员11 (SLC7A11/xCT)和谷胱甘肽过氧化物酶4 (GPX4)上调。相反,ML385降低CBF,加重is诱导的神经元损伤。此外,ML385处理和Nrf2敲除小鼠均加重氧化应激损伤和铁超载,并下调xCT和GPX4的表达。与体内结果一致,Nrf2通过调节xCT/GPX4途径,在体外暴露于诱导铁衰亡的化合物时赋予铁衰亡抗性。本研究证实Nrf2可以通过调节xCT/GPX4来减轻ais诱导的神经元铁下垂和氧化应激。
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Nrf2 alleviates acute ischemic stroke induced ferroptosis via regulating xCT/GPX4 pathway
Ferroptosis is a form of regulating cell death, and iron accumulation in the brain after acute ischemic stroke (AIS) is associated with the triggering of iron metabolism. Nuclear factor erythroid 2-related factor 2 (Nrf2), one of the most critical antioxidant transcription factors in cells, is closely associated with ferroptosis and oxidative stress.In the present study, we explore the intrinsic mechanisms by which Nrf2 exerts neuroprotective effects against AIS-induced ferroptosis.In vivo experiments, we explored the protective effects of AIS induced by middle cerebral artery occlusion (MCAO) and its mechanisms by using intraperitoneal injections of ferrostatin-1 (Fer-1, an inhibitor of ferroptosis), Oltipraz (an agonist of Nrf2) and ML385 (an inhibitor of Nrf2) in wild-type (WT) mice, as well as using Nrf2−/− mice. In vitro experiments, we investigated the mechanism of action of Nrf2 on the establishment of a ferroptosis cell model induced by Erastin by overexpressing or silencing Nrf2 expression using shRNA in SH-SY5Y cells.Ferroptosis played an important role in AIS, and Fer-1 inhibited iron accumulation and alleviated neuronal damage caused by AIS.Oltipraz attenuated AIS-induced neuronal damage and cerebral infarction by increasing cortical blood flow (CBF). Additionally, Oltipraz protected against AIS-induced ferroptosis by reducing oxidative stress and iron overload. Meanwhile, in Oltipraz-treated AIS mice, Nrf2, solute carrier family 7 member 11 (SLC7A11/xCT), and glutathione peroxidase 4 (GPX4) were upregulated. Conversely, ML385 decreased CBF and exacerbated IS-induced neuronal damage. Furthermore, both ML385 treatment and Nrf2 knockout mice exacerbated oxidative stress injury and iron overload and downregulated the expression of both xCT and GPX4. Consistent with the in vivo results, Nrf2 conferred ferroptosis resistance in vitro upon exposure to compounds that induce ferroptosis, by modulating the xCT/GPX4 pathway.The present study confirmed that Nrf2 could attenuate AIS-induced neuronal ferroptosis and oxidative stress by regulating xCT/GPX4.
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来源期刊
Free Radical Biology and Medicine
Free Radical Biology and Medicine 医学-内分泌学与代谢
CiteScore
14.00
自引率
4.10%
发文量
850
审稿时长
22 days
期刊介绍: Free Radical Biology and Medicine is a leading journal in the field of redox biology, which is the study of the role of reactive oxygen species (ROS) and other oxidizing agents in biological systems. The journal serves as a premier forum for publishing innovative and groundbreaking research that explores the redox biology of health and disease, covering a wide range of topics and disciplines. Free Radical Biology and Medicine also commissions Special Issues that highlight recent advances in both basic and clinical research, with a particular emphasis on the mechanisms underlying altered metabolism and redox signaling. These Special Issues aim to provide a focused platform for the latest research in the field, fostering collaboration and knowledge exchange among researchers and clinicians.
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